首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >Distribution of protons and Cd between bacterial surfaces and dissolved humic substances determined through chemical equilibrium modeling
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Distribution of protons and Cd between bacterial surfaces and dissolved humic substances determined through chemical equilibrium modeling

机译:通过化学平衡模型确定质子和Cd在细菌表面和溶解的腐殖质之间的分布

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摘要

Bacteria and dissolved humic substances are capable of binding significant concentrations of metals in natural environments. Recent advances in understanding bacteria-metal and humic-metal complexation have provided a framework for directly comparing the binding capacities of these components. In this study, we use chemical equilibrium modeling to construct an internally consistent set of thermodynamic equilibrium constants for proton and Cd binding onto dissolved humic substances, using a variety of published data sets. Our modeling approach allows for the direct comparison of humic substance binding constants and site densities to those previously published for proton and Cd binding onto natural consortia of bacteria. We then combine these constants into a unified model that accounts for the competition between bacterial surfaces and humic and fulvic acids in order to determine the relative importance of each component on the total Cd budget. The combined model is used to examine the relative contributions of bacteria and dissolved humic substances to Cd complexation in natural settings. Calculations are performed for three representative systems: (1) one with a maximum realistic concentration of bacteria and a minimum realistic concentration of humic substance, (2) one with a maximum realistic concentration of humic substance and a minimum concentration of bacteria, and (3) one with an intermediate concentration of both components.Our modeling results indicate that dissolved humic substances have 2 orders of magnitude more available binding sites than bacterial surfaces (per gram). Humic substances also have a greater affinity than bacterial surfaces for binding Cd over circumneutral pH ranges. The combined model results demonstrate that, depending upon their relative concentrations, both Cd-humic and Cd-bacteria complexes are capable of dominating Cd-speciation in specific natural environments. This modeling approach is useful in that it can easily be extended to include other metals and binding ligands; however, thermodynamic data must be Gathered on additional components to facilitate the modeling of more realistic systems. Copyright (C) 2004 Elsevier Ltd.
机译:细菌和溶解的腐殖质能够在自然环境中结合大量浓度的金属。在理解细菌-金属和腐殖金属络合方面的最新进展为直接比较这些组分的结合能力提供了框架。在这项研究中,我们使用各种公开的数据集,使用化学平衡模型为质子和Cd结合到溶解的腐殖质上建立了一个内部一致的热力学平衡常数。我们的建模方法可以直接比较腐殖质的结合常数和位点密度与先前公布的质子和Cd结合到细菌天然菌落上的结合常数和位点密度。然后,我们将这些常数组合到一个统一的模型中,该模型考虑了细菌表面与腐殖酸和黄腐酸之间的竞争,以便确定每种组分在总Cd预算中的相对重要性。组合模型用于检查自然环境中细菌和腐殖质对Cd络合的相对贡献。对三个有代表性的系统进行了计算:(1)一个具有最大实际细菌浓度和最小实际腐殖质浓度的系统;(2)一个具有最大实际微生物浓度和一个最小腐殖质浓度的系统;以及(3 )这两种成分的浓度都中等。我们的建模结果表明,溶解的腐殖质物质具有比细菌表面高2个数量级的可用结合位点(每克)。腐殖质还具有比细菌表面更大的亲和力,可在环境pH范围内结合Cd。组合模型的结果表明,取决于其相对浓度,Cd腐殖质和Cd-细菌复合物都能够在特定的自然环境中主导Cd的形成。这种建模方法很有用,因为它可以轻松扩展为包括其他金属和结合配体。但是,必须将热力学数据收集在其他组件上,以便于对更实际的系统进行建模。版权所有(C)2004 Elsevier Ltd.

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